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基于特征标权的中文签字核聚类研究
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作者 吴振华 陈晓苏 肖道举 《小型微型计算机系统》 CSCD 北大核心 2006年第11期2061-2066,共6页
针对不同书写者书写同一字的分类问题,介绍了签字的五个全局特征的提取方法.在特征总数不多的情况下,使用特征标权而不是特征选择的方法来反映各特征对于签字分类的区分度不一样的事实,并着重讨论了如何利用待分类的模式,无监督的进行... 针对不同书写者书写同一字的分类问题,介绍了签字的五个全局特征的提取方法.在特征总数不多的情况下,使用特征标权而不是特征选择的方法来反映各特征对于签字分类的区分度不一样的事实,并着重讨论了如何利用待分类的模式,无监督的进行特征标权以得到权重向量的方法.将权重向量加入到作为核函数的高斯函数中,以核聚类方法对签字进行分类,实验显示,采用同样的核聚类步骤,加入权重向量后分类正确率较没有权重向量时的分类正确率有明显提高,权重向量自学习较同类方法指导性更强,说明该方法适用于文中提出的中文签字的分类问题,是可行且有效的. 展开更多
关键词 签字鉴别 特征选择 特征标权 核聚类
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NEW SHADOWED C-MEANS CLUSTERING WITH FEATURE WEIGHTS 被引量:2
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作者 王丽娜 王建东 姜坚 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI 2012年第3期273-283,共11页
Partition-based clustering with weighted feature is developed in the framework of shadowed sets. The objects in the core and boundary regions, generated by shadowed sets-based clustering, have different impact on the ... Partition-based clustering with weighted feature is developed in the framework of shadowed sets. The objects in the core and boundary regions, generated by shadowed sets-based clustering, have different impact on the prototype of each cluster. By integrating feature weights, a formula for weight calculation is introduced to the clustering algorithm. The selection of weight exponent is crucial for good result and the weights are updated iteratively with each partition of clusters. The convergence of the weighted algorithms is given, and the feasible cluster validity indices of data mining application are utilized. Experimental results on both synthetic and real-life numerical data with different feature weights demonstrate that the weighted algorithm is better than the other unweighted algorithms. 展开更多
关键词 fuzzy C-means shadowed sets shadowed C-means feature weights cluster validity index
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